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Article Dans Une Revue Plasma Science and Technology Année : 2009

Increase in the hydrophilicity and Lewis acid-base properties of solid surfaces achieved by electric gliding discharge in humid air: effects on bacterial adherence

Résumé

This study addressed the effects of treatment with gliding discharge plasma on the surface properties of solid materials, as well as the consequences concerning adherence of a model bacterium. As evaluated by contact angles with selected liquids, plasma treatment caused an increase in surface hydrophilicity and in the Lewis acid-base components of the surface energy of all materials tested. These modifications were more marked for low density polyethylene and stainless steel than for polytetrafluoroethylene. After treatment, the hydrophilicity of the materials remained relatively stable for at least 20 days. Moreover, analysis of the topography of the materials by atomic force microscopy revealed that the roughness of both polymers was reduced by glidarc plasma treatment. As a result of all these modifications, solid substrates were activated towards micro-organisms and the adherence of S. epidermidis, a negatively charged Lewis-base and mildly hydrophilic strain selected as the model, was increased in almost all the cases tested.

Dates et versions

hal-01601258 , version 1 (02-10-2017)

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Copyright (Tous droits réservés)

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J. O Kamgang, Murielle Naitali, Jean-Marie Herry, Marie Noelle Bellon-Fontaine, J.-L Brisset, et al.. Increase in the hydrophilicity and Lewis acid-base properties of solid surfaces achieved by electric gliding discharge in humid air: effects on bacterial adherence. Plasma Science and Technology, 2009, 11 (2), pp.187-193. ⟨10.1088/1009-0630/11/2/11⟩. ⟨hal-01601258⟩
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